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Amiodarone prevents wave front-tail interactions in patients with heart failure: an in silico study
Richard A Gray1, Michael R Franz2,3
1Division of Biomedical Physics, Office of Science and Engineering Laboratories, Center for Devices and Radiological Health, Food and Drug Administration, Silver Spring, Maryland, United States.
Insights
Amiodarone (AM) prevents reentrant arrhythmias in heart failure (HF) by increasing postrepolarization refractoriness (PRR) through its sodium channel effects. This study models AM
Area of Science:
- Computational Biology
- Cardiovascular Physiology
- Pharmacology
Background:
- Amiodarone (AM) is an effective antiarrhythmic drug for ventricular arrhythmias in heart failure (HF) patients.
- AM exhibits both Class III and Class I antiarrhythmic properties, but its precise mechanism in preventing reentry in HF is unclear.
Purpose of the Study:
- To test the hypothesis that AM prevents reentry induction in HF by inducing postrepolarization refractoriness (PRR) via its Class I sodium channel effects.
- To develop and utilize a human action potential model incorporating HF and AM effects to investigate this mechanism.
Main Methods:
- Extended a human action potential model to simulate HF and AM effects separately, calibrated with human tissue and clinical data.
- Combined HF and AM models to simulate reentry induction in 2D models under various action potential duration gradients.
- Investigated the role of sodium channel recovery of inactivation in AM's antiarrhythmic effect.
Main Results:
- In silico simulations showed AM increases PRR and decreases takeoff potential elevation.
- Reentry was induced in all HF models but prevented in 23 of 24 HF + AM models.
- Restoring normal sodium channel recovery of inactivation in the presence of AM allowed reentry induction.
Conclusions:
- Computational testing suggests chronic AM treatment prevents reentry induction in HF patients during programmed electrical stimulation.
- This prevention is attributed to AM's Class I effect of inducing postrepolarization refractoriness.
- A novel model elucidates AM's mechanism in preventing reentrant arrhythmias in HF.
Abstract:
Amiodarone (AM) is an antiarrhythmic drug whose chronic use has proved effective in preventing ventricular arrhythmias in a variety of patient populations, including those with heart failure (HF). AM has both class III [i.e., it prolongs the action potential duration (APD) via blocking potassium channels) and class I (i.e., it affects the rapid sodium channel) properties; however, the specific mechanism(s) by which it prevents reentry formation in patients with HF remains unknown. We tested the hypothesis that AM prevents reentry induction in HF during programmed electrical stimulation (PES) via its ability to induce postrepolarization refractoriness (PRR) via its class I effects on sodium channels. Here we extend our previous human action potential model to represent the effects of both HF and AM separately by calibrating to human tissue and clinical PES data, respectively. We then combine these models (HF + AM) to test our hypothesis. Results from simulations in cells and cables suggest that AM acts to increase PRR and decrease the elevation of takeoff potential. The ability of AM to prevent reentry was studied in silico in two-dimensional sheets in which a variety of APD gradients (ΔAPD) were imposed. Reentrant activity was induced in all HF simulations but was prevented in 23 of 24 HF + AM models. Eliminating the AM-induced slowing of the recovery of inactivation of the sodium channel restored the ability to induce reentry. In conclusion, in silico testing suggests that chronic AM treatment prevents reentry induction in patients with HF during PES via its class I effect to induce PRR.NEW & NOTEWORTHY This work presents a new model of the action potential of the human, which reproduces the complex dynamics during premature stimulation in heart failure patients with and without amiodarone. A specific mechanism of the ability of amiodarone to prevent reentrant arrhythmias is presented.
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